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星形胶质细胞转谷氨酰胺酶 2 的耗竭可改善损伤结局。

Depletion of astrocytic transglutaminase 2 improves injury outcomes.

机构信息

Department of Pharmacology and Physiology, University of Rochester, Rochester, NY 14642, USA.

Department of Biomedical Genetics, University of Rochester, Rochester, NY 14642, USA.

出版信息

Mol Cell Neurosci. 2018 Oct;92:128-136. doi: 10.1016/j.mcn.2018.06.007. Epub 2018 Jun 30.

Abstract

Astrocytes play an indispensable role in maintaining a healthy, functional neural network in the central nervous system (CNS). A primary function of CNS astrocytes is to support the survival and function of neurons. In response to injury, astrocytes take on a reactive phenotype, which alters their molecular functions. Reactive astrocytes have been reported to be both beneficial and harmful to the CNS recovery process subsequent to injury. Understanding the molecular processes and regulatory proteins that determine the extent to which an astrocyte hinders or supports neuronal survival is important within the context of CNS repair. One protein that plays a role in modulating cellular survival is transglutaminase 2 (TG2). Global deletion of TG2 results in beneficial outcomes subsequent to in vivo ischemic brain injury. Ex vivo studies have also implicated TG2 as a negative regulator of astrocyte viability subsequent to injury. In this study we show that knocking down TG2 in astrocytes significantly increases their ability to protect neurons from oxygen glucose deprivation (OGD)/reperfusion injury. To begin to understand how deletion of TG2 in astrocytes improves their ability to protect neurons from injury, we performed transcriptome analysis of wild type and TG2 astrocytes. TG2 deletion resulted in alterations in genes involved in extracellular matrix remodeling, cell adhesion and axon growth/guidance. In addition, the majority of genes that showed increases in the TG2 astrocytes had predicted cJun/AP-1 binding motifs in their promoters. Furthermore, phospho-cJun levels were robustly elevated in TG2 astrocytes, a finding which was consistent with the increase in expression of AP-1 responsive genes. These in vitro data were subsequently extended into an in vivo model to determine whether the absence of astrocytic TG2 improves outcomes after CNS injury. Our results show that, following a spinal cord injury, scar formation is significantly attenuated in mice with astrocyte-specific TG2 deletion compared to mice expressing normal TG2 levels. Taken together, these data indicate that TG2 plays a pivotal role in mediating reactive astrocyte properties following CNS injury. Further, the data suggest that limiting the AP-1 mediated pro-survival injury response may be a contributing factor to that the detrimental effects of astrocytic TG2.

摘要

星形胶质细胞在中枢神经系统 (CNS) 中维持健康、功能正常的神经网络中发挥着不可或缺的作用。CNS 星形胶质细胞的主要功能之一是支持神经元的存活和功能。在损伤时,星形胶质细胞表现出反应性表型,改变其分子功能。有报道称,反应性星形胶质细胞对损伤后继发的中枢神经系统恢复过程既有益处也有危害。了解决定星形胶质细胞在多大程度上阻碍或支持神经元存活的分子过程和调节蛋白对于中枢神经系统修复至关重要。一种在调节细胞存活中起作用的蛋白质是转谷氨酰胺酶 2 (TG2)。在体内缺血性脑损伤后,TG2 的全局缺失会产生有益的结果。离体研究也表明,TG2 是损伤后继发性星形胶质细胞活力的负调节因子。在这项研究中,我们表明在星形胶质细胞中敲低 TG2 可显著提高其保护神经元免受氧葡萄糖剥夺 (OGD)/再灌注损伤的能力。为了开始了解星形胶质细胞中 TG2 的缺失如何提高其保护神经元免受损伤的能力,我们对野生型和 TG2 星形胶质细胞进行了转录组分析。TG2 缺失导致参与细胞外基质重塑、细胞黏附和轴突生长/导向的基因发生改变。此外,在 TG2 星形胶质细胞中表达增加的大多数基因在其启动子中具有预测的 cJun/AP-1 结合基序。此外,TG2 星形胶质细胞中的磷酸化 cJun 水平显著升高,这与 AP-1 反应基因的表达增加一致。这些体外数据随后扩展到体内模型,以确定中枢神经系统损伤后星形胶质细胞中缺乏 TG2 是否改善结果。我们的结果表明,在脊髓损伤后,与表达正常 TG2 水平的小鼠相比,星形胶质细胞特异性 TG2 缺失的小鼠的疤痕形成明显减弱。综上所述,这些数据表明 TG2 在中枢神经系统损伤后继发性反应性星形胶质细胞特性的调节中起着关键作用。此外,数据表明限制 AP-1 介导的促存活损伤反应可能是星形胶质细胞 TG2 有害影响的一个因素。

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